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Across-subject ensemble-learning alleviates the need for large samples for fMRI decoding

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arxiv 2407.12056 v1 pith:F447VB5U submitted 2024-07-09 eess.IV cs.LG

classification eess.IVcs.LG
keywords decodingapproachlargecognitivedataensembleconventionaldatasets
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Decoding cognitive states from functional magnetic resonance imaging is central to understanding the functional organization of the brain. Within-subject decoding avoids between-subject correspondence problems but requires large sample sizes to make accurate predictions; obtaining such large sample sizes is both challenging and expensive. Here, we investigate an ensemble approach to decoding that combines the classifiers trained on data from other subjects to decode cognitive states in a new subject. We compare it with the conventional decoding approach on five different datasets and cognitive tasks. We find that it outperforms the conventional approach by up to 20% in accuracy, especially for datasets with limited per-subject data. The ensemble approach is particularly advantageous when the classifier is trained in voxel space. Furthermore, a Multi-layer Perceptron turns out to be a good default choice as an ensemble method. These results show that the pre-training strategy reduces the need for large per-subject data.

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  1. Optimizing fMRI Data Acquisition for Decoding Natural Speech with Limited Participants

    q-bio.NC 2025-05 conditional novelty 6.0 of 10

    In a small cohort, fMRI decoders improve with more data per participant, and multi-subject training or shared stimuli add no benefit, so deep phenotyping is the recommended acquisition strategy.

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